Effect of acid scarification and cold moist stratification on the germination of Cercis siliquastrum L. seeds

Dormancy in Cercis siliquastrum seeds is due to the hard, impermeable seed coat and inhibition by endosperm. The effects of acid scarification, cold moist stratification, and the combination of both on breaking dormancy and enhancing seed germination were evaluated. Seeds were scarified with concentrated (95%-97%) sulfuric acid for various times (0, 20, 40, and 60 min), followed by cold moist stratification for 0, 1, 2, 3, or 4 months. Unscarified seeds did not germinate whether they were stratified (up until 4 months) or not. Similarly, seeds that were scarified (20, 40, and 60 min) and then stratified for 0 or 1 month did not germinate or exhibited very low germination percentages. The interaction between acid scarification and cold stratification treatments significantly affected seed germination. Particularly, after a period of 2 months of cold stratification, increasing the duration of scarification (20 to 60 min) also increased the germination percentages (31% to 65%). High germination percentages equal to 94%, 88%, and 98% were attained after a period of 3 months of cold stratification for seeds that had been scarified for 20, 40, and 60 min, respectively. Longer periods of stratification (4 months) of seeds scarified for 20, 40, and 60 min reduced the germination percentages (81%, 68%, and 59%, respectively). This decrease was higher in seeds that were scarified for 60 min.

Effect of acid scarification and cold moist stratification on the germination of Cercis siliquastrum L. seeds

Dormancy in Cercis siliquastrum seeds is due to the hard, impermeable seed coat and inhibition by endosperm. The effects of acid scarification, cold moist stratification, and the combination of both on breaking dormancy and enhancing seed germination were evaluated. Seeds were scarified with concentrated (95%-97%) sulfuric acid for various times (0, 20, 40, and 60 min), followed by cold moist stratification for 0, 1, 2, 3, or 4 months. Unscarified seeds did not germinate whether they were stratified (up until 4 months) or not. Similarly, seeds that were scarified (20, 40, and 60 min) and then stratified for 0 or 1 month did not germinate or exhibited very low germination percentages. The interaction between acid scarification and cold stratification treatments significantly affected seed germination. Particularly, after a period of 2 months of cold stratification, increasing the duration of scarification (20 to 60 min) also increased the germination percentages (31% to 65%). High germination percentages equal to 94%, 88%, and 98% were attained after a period of 3 months of cold stratification for seeds that had been scarified for 20, 40, and 60 min, respectively. Longer periods of stratification (4 months) of seeds scarified for 20, 40, and 60 min reduced the germination percentages (81%, 68%, and 59%, respectively). This decrease was higher in seeds that were scarified for 60 min.

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  • Anderson L, Milberg P (1998) Variation in seed dormancy among mother plants, populations and years of seed collection. Seed Science Research 8: 29-38.
  • Boratynski A, Browicz K, Zielinski J (1992) Chorology of Trees and Shrubs in Greece. Polish Academy of Sciences, Institute of Dendrology, Sorus, Poznan/Kornik.
  • Brickell C (1996) The Royal Horticultural Society A-Z Encyclopedia of Garden Plants. Dorling Kindersley Ltd., London, UK.
  • Cavieres LA, Arroyo MTK (2000) Seed germination response to cold stratification period and thermal regime in Phacelia secunda (Hydrophyllaceae). Plant Ecology 149: 1-8.
  • Demel T (1996) Germination ecology of twelve indigenous and eight exotic multipurpose leguminous species from Ethiopia. Forest Ecology and Management 80: 209-223.
  • Fenner M (1991) The effects of the parent environment on seed germinability. Seed Science Research 1: 75-84.
  • Fenner M, Thompson K (2005) The Ecology of Seeds. Cambridge University Press, Cambridge, UK.
  • Gebre GH, Karam NS (2004) Germination of Cercis siliquastrum seeds in response to gibberellic acid and stratification. Seed Science and Technology 32: 255-260.
  • Geneve RL (1991) Seed dormancy in eastern redbud (Cercis canadensis). Journal of the American Society for Horticultural Science 116: 85-88.
  • Gomez KA, Gomez AA (1984) Statistical Procedures for Agricultural Research. 2nd ed. John Wiley and Sons Publications.
  • Hamilton DF, Carpenter PL (1975) Regulation of seed dormancy in Cercis canadensis L. Journal of the American Society for Horticultural Science 100: 653-656.
  • International Seed Testing Association (ISTA) (1999) International rules for seed testing. Seed Science and Technology 27, Supplement, 333 pp.
  • Jones RO, Geneve RL (1995) Seedcoat structure related to germination in eastern redbud (Cercis canadensis L.). Journal of the American Society for Horticultural Science 120: 123-127.
  • Klockars A, Sax G (1986) Multiple Comparisons. Sage Publications, Newbury Park, California.
  • Liu NY, Khatamian H, Fretz TA (1981) Seed coat structure of three woody legume species after acid and physical treatments to increase seed germination. Journal of the American Society for Horticultural Science 106: 691-694.
  • Martinucci R, Gastaldo P, Profumo P, Riggio Bevilacqua L (1985) Bound ferulic acid in the endosperm of Cercis siliquastrum L. Plant Science 38: 41-46.
  • Matis K (1989). Forest Biometry. Part I: Statistics (in Greek). Aristotle University of Thessaloniki Press, Thessaloniki.
  • Orozco-Almanza MS, Leon-Garcia LP, Grether R, Garcia-Moya E (2003) Germination of four species of the genus Mimosa (Leguminosae) in a semi-arid zone of Central Mexico. Journal of Arid Environments 55: 75-92.
  • Piotto B, Bartolini G, Bussotti F, Asensio AAC, Garcia C, Chessa I, Ciccarese C, Ciccarese L, Crosti R, Cullum FJ, Noi AD, Garcia- Fayos P, Lambardi M, Lisci M, Lucci S, Melini S, Reinoso JCM, Murranca S, Nieddu G, Pacini E, Pagni G, Patumi M, Garcia FP, Piccini C, Rossetto M, Tranne G, Tylkowski T (2003) Fact sheets on the propagation of Mediterranean trees and shrubs from seed. In: Seed Propagation of Mediterranean Trees and Shrubs (Eds. B Piotto, A Di Noi), APAT, Rome, pp. 11-51.
  • Pipinis E, Aslanidou M, Milios E, Gkioumousides C, Karakosta C (2005) Germination study on three leguminous species Calycotome villosa, Spartium junceum and Medicago arborea (in Greek). Scientific Annals of the Department of Forestry and Natural Environment 43: 253-263.
  • Powell LE (1987) Hormonal aspects of bud and seed dormancy in temperate-zone woody plants. HortScience, 22: 845-850.
  • Rascio N, Mariani P, Vecchia FD, Rocca NL, Profumo P, Gastaldo P (1998) Effects of seed chilling or GA3supply on dormancy breaking and plantlet growth in Cercis siliquastrum L. Plant Growth Regulation 25: 53-61.
  • Riggio-Bevilacqua L, Roti-Michelozzi G, Serrato-Valenti G (1985) Barriers to water penetration in Cercis siliquastrum seeds. Seed Science and Technology 13: 175-182.
  • Rosner LS, Harrington JT, Dreesen DR, Murray L (2003) Sulfuric acid scarification of wax currant seeds from New Mexico. Native Plants Journal 4: 65-71.
  • Sacheti U, Al-Rawahy SH (1998) The effects of various pretreatments on the germination of important leguminous shrub-tree species of the Sultanate of Oman. Seed Science and Technology 26: 691- 699.
  • Snedecor GW, Cochran WG (1988) Statistical Methods. 7th ed. The Iowa State University Press, Ames, Iowa.
  • Sokal RR, Rohlf FG (1995) Biometry: The Principles and Practices of Statistics in Biological Research. 3rd ed. W.H. Freeman and Company, New York.
  • Sy A, Grouzis M, Danthu P (2001) Seed germination of seven Sahelian legume species. Journal of Arid Environments 49: 875-882.
  • Tipton JL (1992) Requirements for seed germination of Mexican redbud, evergreen sumac, and mealy sage. Hortscience 27: 313- 316.
Turkish Journal of Agriculture and Forestry-Cover
  • ISSN: 1300-011X
  • Yayın Aralığı: Yılda 6 Sayı
  • Yayıncı: TÜBİTAK
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